US7358808B2 - Method and device for amplification of data signals over power lines - Google Patents
Method and device for amplification of data signals over power lines Download PDFInfo
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- US7358808B2 US7358808B2 US11/156,612 US15661205A US7358808B2 US 7358808 B2 US7358808 B2 US 7358808B2 US 15661205 A US15661205 A US 15661205A US 7358808 B2 US7358808 B2 US 7358808B2
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- amplifier
- input port
- output port
- power line
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B3/00—Line transmission systems
- H04B3/54—Systems for transmission via power distribution lines
- H04B3/542—Systems for transmission via power distribution lines the information being in digital form
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B2203/00—Indexing scheme relating to line transmission systems
- H04B2203/54—Aspects of powerline communications not already covered by H04B3/54 and its subgroups
- H04B2203/5429—Applications for powerline communications
- H04B2203/5441—Wireless systems or telephone
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B2203/00—Indexing scheme relating to line transmission systems
- H04B2203/54—Aspects of powerline communications not already covered by H04B3/54 and its subgroups
- H04B2203/5429—Applications for powerline communications
- H04B2203/5445—Local network
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B2203/00—Indexing scheme relating to line transmission systems
- H04B2203/54—Aspects of powerline communications not already covered by H04B3/54 and its subgroups
- H04B2203/5462—Systems for power line communications
- H04B2203/5491—Systems for power line communications using filtering and bypassing
Definitions
- the present invention generally relates to data communications over a power distribution system and more particularly, to amplification of data signals along a power line.
- PLCS power line communication system
- existing power lines that already have been run to many homes and offices, can be used to carry data signals to and from the homes and offices.
- data signals will encompass any information carrying signal such as packetized data using protocols such as the transmission control protocol (TCP) and internet protocol (IP) as well as non-packetized framed data such as video or voice.
- TCP transmission control protocol
- IP internet protocol
- data signals are communicated on and off the power lines at various points in the power line communication system, such as, for example, near homes, offices, Internet service providers, and the like.
- FIG. 2 An exemplary portion of a power line communication system is shown in FIG. 2 and includes one or more bypass devices (BD) 80 to communicate data signals around the distribution transformer that would otherwise filter such data signals.
- BD 80 serves as a gateway between the LV power lines and the MV power line and communicates signals to and from the user devices at the customer premises (CP), preventing them from passing through the transformer or significantly degrading them.
- BD 80 is the gateway between the LV power line subnet (i.e., the devices that are communicatively coupled to the LV power lines) and the MV power line and communicates signals to and from user devices at the customer premises (CP) via the low voltage subnet 61 .
- the BD 80 provides communication services for the user, which may include security management, routing of IP packets, filtering data, access control, service level monitoring, signal processing and modulation/demodulation of signals transmitted over the power lines.
- the exemplary PLCS also includes a backhaul point 10 .
- the backhaul point 10 is an interface and gateway between a portion of a PLCS (e.g., an MV run) and a traditional non-power line telecommunications network.
- One or more backhaul points (BP) 10 are communicatively coupled to an aggregation point (AP) 20 that in many embodiments may be at (e.g., co-located with), or connected to, the point of presence to the Internet.
- the BP 10 may be connected to the AP 20 using any available mechanism, including fiber optic conductors, T-carrier, Synchronous Optical Network (SONET), or wireless techniques well known to those skilled in the art.
- SONET Synchronous Optical Network
- the BP 10 may include a transceiver suited for communicating through the communication medium.
- a proposed solution has been to insert data signal repeaters along MV power lines to periodically regenerate data signals.
- repeaters may introduce unwanted latency to data signals.
- Such latency while tolerable for some data communications (e.g., latency insensitive data such as web page data), is undesirable for more time sensitive data such as voice or video.
- any device that interfaces with the MV power line be designed to minimize any potential interruption of power service for a large number of customer premises.
- the invention provides a device for amplification of data signals over power lines.
- the invention is a device for amplifying data signals on a power line conductor, comprising a bandpass filter having an input port and an output port, wherein the input port is configured to be communicatively coupled to the power line conductor; an amplifier having an input port and an output port; wherein the amplifier output port is configured to be communicatively coupled to the power line conductor; a frequency converter (FC) having an input port and an output port; and wherein the FC input port is communicatively coupled to the filter output port and the FC output port is communicatively coupled to the amplifier input port.
- a bandpass filter having an input port and an output port
- the input port is configured to be communicatively coupled to the power line conductor
- an amplifier having an input port and an output port
- the amplifier output port is configured to be communicatively coupled to the power line conductor
- FC frequency converter
- the invention a first switch and a second switch, the switches configured for operating in an open state and a closed state, the switches having an input port and an output port, each of the switches having its input port communicatively coupled to the power line conductor; a first bandpass filter and a second bandpass filter, the filters having an input port and an output port, the input port of said first bandpass filter communicatively coupled to the output port of said first switch, the input port of the second bandpass filter communicatively coupled to the output port of the second switch; a first frequency converter (FC) and a second frequency converter (FC), the FCs having an input port and an output port, the input port of the first FC communicatively coupled to the output port of the first bandpass filter, the input port of the second FC communicatively coupled to the output port of the second bandpass filter; and a first amplifier and a second amplifier, the amplifiers having an input port and an output port, the input port of the first amplifier communicatively coupled to the output port of the first FC, the input port
- the invention may include an array of N amplification devices, wherein each of the amplification devices is characterized by a unique transmitting frequency f, each of the amplification devices comprises a switch configured for operating in an open state and a closed state, the switch having an input port and an output port, each switch having its input port communicatively coupled to the power line conductor; a bandpass filter having an input port and an output port, the input port of the bandpass filter communicatively coupled to the output port of the switch; a frequency converter (FC) having an input port and an output port, the input port of the FC communicatively coupled to the output port of the bandpass filter; and an amplifier having an input port and an output port, the input port of the amplifier communicatively coupled to the output port of the FC, the output port of the amplifier communicatively coupled to the power line conductor; wherein each of the unique transmitting frequencies f is orthogonal to each of the other frequencies.
- each of the unique transmitting frequencies f is orthogonal to each of the other frequencies.
- FIG. 1 is a diagram of an exemplary power distribution system with which the present invention may be employed
- FIG. 2 is a diagram of a portion of an exemplary power line communications system, with which an example embodiment of the present invention may be used;
- FIG. 3 is a block diagram of a bypass device for use in an exemplary power line communications system
- FIG. 4 is an amplification device in accordance with an example embodiment of the present invention.
- FIG. 5 is an amplification device in accordance with an example embodiment of the present invention.
- FIG. 6 is an amplification device in accordance with another example embodiment of the present invention.
- FIG. 7 is schematic block diagram of a parallel configuration of a plurality of amplification devices in accordance with an example embodiment of the present invention.
- FIG. 1 there is shown a typical power distribution system including components for power generation, power transmission, and power delivery.
- a transmission substation typically is used to increase the voltage from the power generation source to high voltage (HV) levels for long distance transmission on HV transmission lines to a substation.
- HV high voltage
- Typical voltages found on HV transmission lines range from 69 kilovolts (kV) to in excess of 800 kV.
- power distribution systems include MV power lines and LV power lines.
- MV typically ranges from about 1000 V to about 100 kV and LV typically ranges from about 100 V to about 1,000 V.
- Transformers are used to convert between the respective voltage portions, e.g., between the HV section and the MV section and between the MV section and the LV section. Transformers have a primary side for connection to a first voltage (e.g., the MV section) and a secondary side for outputting another (usually lower) voltage (e.g., the LV section).
- Such transformers are often referred to as distribution transformers or a step down transformers, because they “step down” the voltage to some lower voltage. Transformers, therefore, provide voltage conversion for the power distribution system.
- power is carried from substation transformer to a distribution transformer 60 over one or more MV power lines. Power is carried from the distribution transformer to the customer premises via one or more LV power lines.
- a distribution transformer 60 may function to distribute one, two, three, or more phase voltages to the customer premises, depending upon the demands of the user. In the United States, for example, these local distribution transformers typically feed anywhere from one to ten homes, depending upon the concentration of the customer premises 40 in a particular area. Distribution transformers 60 may be pole-top transformers located on a utility pole, pad-mounted transformers located on the ground, or transformers located under ground level.
- the BD 80 is the gateway between the LV power line subnet (i.e., the devices that are communicatively coupled to the LV power lines) and the MV power line and communicates signals to and from user devices at the customer premises (CP) via the low voltage subnet 61 .
- a power line interface device 50 (sometimes referred to as a power line modem) provides an interface for user devices to access the PLCS.
- BD 80 provides communication services for the user, which may include security management, routing of Internet Protocol (IP) packets, filtering data, access control, service level monitoring, signal processing and modulation/demodulation of signals transmitted over the power lines.
- IP Internet Protocol
- This example portion of a PLCS also includes a backhaul point 10 .
- the backhaul point 10 is an interface and gateway between a portion of a PLCS (e.g., an MV run) and a traditional non-power line telecommunications network.
- One or more backhaul points (BP) 10 are communicatively coupled to an aggregation point (AP) 20 that in many embodiments may be at (e.g., co-located with), or connected to, the point of presence to the Internet.
- the BP 10 may be connected to the AP 20 using any available mechanism, including fiber optic conductors, T-carrier, Synchronous Optical Network (SONET), or wireless techniques well known to those skilled in the art.
- SONET Synchronous Optical Network
- the BP 10 may include a transceiver suited for communicating through the communication medium.
- AP 20 may include a conventional Internet Protocol (IP) data packet router and may be directly connected to an Internet backbone thereby providing access to the Internet.
- IP Internet Protocol
- the AP 20 may be connected to a core router (not shown), which provides access to the Internet, or other communication network.
- a plurality of APs 20 may be connected to a single core router which provides Internet access.
- the core router (or AP 20 as the case may be) may route voice traffic to and from a voice service provider and route Internet traffic to and from an Internet service provider and/or video provider.
- the routing of packets to the appropriate provider may be determined by any suitable means such as by including information in the data packets to determine whether a packet is voice.
- the packet may be routed to the voice service provider and, if not, the packet may be routed to the Internet service provider.
- the packet may include information (which may be a portion of the address) to determine whether a packet is Internet data. If the packet is Internet data, the packet may be routed to the Internet service provider and, if not, the packet may be routed to the voice service provider. Additionally, if the packet includes voice, video or other time sensitive data, it may be accorded a higher priority to thereby reduce the latency thereof.
- a distribution point (not shown) between the BP 10 and the AP 20 .
- the distribution point which includes a router, may be coupled to a plurality of BPs 10 and provides routing functions between its BPs 10 and its AP 20 .
- a plurality of BPs 10 are connected to each distribution point and each distribution point (of which there are a plurality) is coupled to the AP 20 , which provides access to the Internet.
- BD 80 typically transmits the data to (and receives the data from) the backhaul point 10 , which, in turn, transmits the data to (and receives the data from) the AP 20 .
- AP 20 then transmits the data to (and receives the data from) the appropriate destination (perhaps via a core router), which may be a network destination (such as an Internet address) in which case the packets are transmitted to, and pass through, numerous routers (herein routers are meant to include both network routers and switches) in order to arrive at the desired destination.
- BD 80 includes a MV power line interface (MVI) 200 , a controller 300 , and a LV power line interface (LVI) 400 .
- the BD 80 is controlled by a programmable processor and associated peripheral circuitry, which form part of the controller 300 .
- the controller 300 includes memory that stores, among other things, program code, which controls the operation of the processor.
- the LVI 400 may include a LV modem as well as a power line coupler and LV signal conditioner.
- the MVI 200 may include a MV modem, a MV signal conditioner and a power line coupler. Bi-directional communications around the distribution transformer 60 are provided by a first communications path from the LV power line to the MV power line and a second path from the MV power line to the LV power line.
- BD 80 may also be configured to repeat data communications.
- the repeating functionality of the device allows the communications range of a BP 10 to be expanded such that communications devices (e.g., BDs 80 ) with unsatisfactory connectivity (e.g., due to noise or attenuation of signals) can be improved by repeating to make their connections satisfactory.
- the repeater functionality typically will extend the ‘reach’ of the BP 10 to include communications devices at distances that normally could not be reached by direct transmission between the device and the BP 10 .
- Repeater functionality may be enabled or disabled as desired by the operator.
- the repeating communications device may include a medium voltage port (for communications over the MV power line) and a wireless transceiver for communications to the user devices at the customer premises (e.g., instead of an LV port).
- a bypass device may bypass the transformer without coupling to the LV power line at the transformer.
- the repeater functionality may be combined with the backhaul functionality.
- a BD 80 configured to operate as a repeater may introduce unwanted latency to data signal communications.
- hardware and software processing overhead introduced by modulating/demodulating data can cause undue latency, especially for packetized data. This latency, while tolerable for some data communications, may be undesirable for time sensitive applications such as voice and video communications.
- the embodiment described below is an amplification device for amplifying data signals without the need for demodulating and modulating the high frequency data signals, and therefore avoiding undue latency.
- FIG. 4 there is shown one example embodiment of the amplification device 100 in accordance with the principles of the invention.
- the amplification device is communicatively coupled to the MV power line and includes a filter 120 , a frequency converter 140 and an amplifier 160 .
- Data signals transmitted along power lines are bidirectional and may be transmitted in full duplex mode using known techniques of frequency domain multiplexing. That is, the data signals transmitted in one direction are modulated onto a different high frequency signal than the data signals transmitted in the opposing direction.
- the data signals also be transmitted over a multiple phase power line conductors as well as a single phase.
- the amplification device 100 may include a MV coupler that couples the high frequency data signals from the MV power line by known capacitive or inductive coupling techniques.
- frequencies from 0 to 100 Hz i.e. power signals
- frequencies from 1 MHz to 50 MHz i.e. data signals
- the coupler may comprise a two port conductive as described in the reference incorporated herein.
- the filter 120 may be a bandpass filter configured to pass a band of desired frequency modulated data signals while impeding unwanted frequencies.
- Bandpass filters are well known in the art and will not be described in detail here. However, proper choice of frequency bands allows the amplification device to pass, for example, a frequency band of signals in one direction, essentially, creating a half-duplex amplifier. Alternatively, a frequency band of signals can be chosen so that data signals extracted from only one phase of a three phase power line conductor are amplified.
- the output port of the filter 120 is communicatively coupled to a frequency converter 140 .
- the frequency converter 140 converts the broadband frequency of the received data signals to another broadband frequency.
- Such frequency converters are known in the art and will not be described in detail here.
- the input frequency f input is not equal to the f output from the frequency converter and also may not overlap in frequency. Selection of f input and f output may be dependent upon the frequency spectrum available for data signal transmission.
- interference between f input and f output is minimized by a guard band of frequency interposed between f input and f output .
- the guard band of frequency is selected so as to minimize the possible interference between f input and f output .
- f input and f output are chosen to be orthogonal to each other. Orthogonal frequencies prevent any interference and can be chosen to be superimposed upon each other and therefore there is no need for a guard band of frequency.
- the amplifier 160 is an amplifier configured for amplifying the f output modulated data signal for suitable transmission to a BP 10 , a BD 80 , a repeater, or another amplification device 100 .
- the gain of the amplifier 160 may be linear or nonlinear and may be configured depending upon the selection of broadband carrier frequency (i.e., f output ).
- the gain of the amplifier is configured for suitable dynamic predistortion of the high frequency data signal for proper spectral purity requirements further down the medium voltage power line (to either a BP 10 , BD 80 or another amplification device 100 ).
- suitable dynamic predistortion may be characterized for a particular instance of the amplification device 100 depending on the type of physical path along the medium voltage power line (i.e., overhead or underground, physical topology, network topology, or distance to another device). Additionally, the amplifier may pre-emphasize certain frequencies.
- Amplifier 160 may also apply signal conditioning after amplification of the data signal. Such signal conditioning may include applying an anti-aliasing filter and/or noise filtering. Additionally, some compensation for the higher attenuation along the power line for higher frequency bands may also be made by extra amplification to the amplified signal.
- the output signal from the amplifier is injected on to the medium voltage power line for bi-directional transmission through either the any of the coupling techniques previously discussed.
- the output signal is also presented to the input port of the bandpass filter 120 but is impeded since the bandpass filter impedes unwanted frequencies.
- Amplification device 100 may further include a power supply (not shown) composed of toroid with windings that form part of a coupling transformer.
- the power coupling device may inductively draw electrical energy from the MV power line to provide power to the components that comprises the amplification device.
- the power supply receives power from a low voltage power line.
- this exemplary embodiment adds a switch 180 in series with the filter 120 .
- the switch 180 is configured for operating in one of two states—open or closed.
- the switch performs switching functions so that data signals extracted from the medium voltage power line are coupled to the filter 120 when the switch is in a closed state.
- the switch 180 is in an open state, there is no coupling of the data signals to the filter 120 .
- the switch 180 acts in conjunction with the amplifier 160 so that when the amplifier 160 begins to transmit an output signal, the switch simultaneously engages in an open state. Therefore, the amplifier output signal is coupled to the power line conductor and propagated along the conductor but is impeded from being presented to the filter 120 . Conversely, when the amplifier 160 is not in a transmit state, the switch 180 is in a closed state so that data signals from the power line are presented to the filter 120 .
- Switch 180 may be implemented as an ultra-fast diode with fast recovery times and may be actuated by the signal from the output of the amplifier 160 , the buffer 190 , or the filter 120 to provide the necessary coordination.
- this embodiment obviates the need for a frequency converter.
- Proper coordination of the switch 180 and the amplifier 160 ensures amplification of the data signal without the necessity of frequency conversion while preventing positive or circular feedback back to the amplifier.
- f input and f output may be identical.
- the amplification device of this embodiment includes a buffer 190 .
- the buffer 190 interposed between the amplifier 160 and the filter 120 , assures that variable length IP packets are buffered until the entire IP packet is received before amplification and transmission by the amplifier 160 .
- the buffer may additionally be configured to handle other types of packet like data (i.e. relay frame, TCP datagram).
- the buffer may include a fast digital signal processor an memory for storing the digitized signal for a predetermined period (e.g., until the entire packet is received).
- Amplification devices 100 a and 100 b are coupled in parallel and jointly coupled to the medium voltage power line.
- Each of the amplification devices 100 a , 100 b includes its respective switches 180 a , 180 b , coupled to respective filters 160 a , 160 b .
- the filter outputs are coupled respectively to frequency converters 140 a , 140 b .
- Each amplification device 100 a , 100 b additionally includes respective amplifiers 160 a , 160 b.
- f 1 and f 2 the respective transmit frequencies of amplification devices 100 a and 100 b respectively, are orthogonal to each other.
- switch 180 a of amplification device 100 a engages in an open state when amplifier 160 b is transmitting.
- switch 180 b of amplification device 100 b engages in an open state when amplifier 160 a is transmitting.
- amplifier 160 a acts in conjunction with switch 180 b of amplification device 100 b
- amplifier 160 b acts in conjunction with switch 180 a of amplification device 100 a
- two logical channels of data communication are created.
- Amplification devices 100 a , 100 b , 100 c , . . . 100 N are arranged in parallel and jointly coupled to the medium voltage power line.
- Each amplification device 100 may include a switch (not shown), filter (not shown), frequency converter (not shown) and amplifier (not shown).
- the transmit frequency of each amplification device is orthogonal to the frequencies of each of the other amplification devices. That is, f 1 is orthogonal to every other transmit frequency (f 2 , f 3 , f 4 , . . . f N ).
- ODFM Orthogonal Frequency Division Multiplex Scheme
- CDMA Code Division Multiple Access
- TDMA Time Division Multiple Access
- FDM Frequency Division Multiplex
- a modulation scheme producing a wideband signal such as CDMA or OFDM that is relatively flat in the spectral domain may be used to reduce radiated interference to other systems while still delivering high data communication rates.
- the device 100 may be in communication with a first PLC device (e.g., a BP, repeater, a BD, or other device 100 ) located in a first direction along the MV power line via a first frequency band and may be in communication with a second PLC device (e.g., a BP, repeater, a BD, or other device 100 ) located in a second direction along the MV power line via a second frequency band.
- a first PLC device e.g., a BP, repeater, a BD, or other device 100
- a second PLC device e.g., a BP, repeater, a BD, or other device 100
- the amplification device 100 may be used to bypass data signals around the distribution transformer, in which case the output of the amplifier 160 may be coupled to a different power line conductor than that of the filter input.
- the input of the filter 120 a may be coupled to the MV power line and the output of the amplifier 160 a may be coupled to the low voltage power line.
- the input of the second filter 120 b may be coupled to the LV power line and the output of the amplifier 160 b may be coupled to the MV power line.
- a bi-directional amplification device for amplification of data signals over power line conductors has been disclosed.
- the described amplification device avoids the modulation and demodulation latency problems associated with repeaters while providing variable amplification to high frequency modulated data signals.
- Voice, video and other time sensitive data signal transmission may be delivered in a more efficient manner without undue latency.
- the described amplification device extends the physical range of data signals, especially on medium voltage power lines, thereby reducing the requirement for backhaul points and its associated backhaul media to traditional communication networks.
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